IP Library › Granted Patent US 11,933,132
Granted Patent B1
US 11,933,132 · App. 17/501,494 · Granted Mar 19, 2024

Frac plug and method of controlling fluid flow in plug and perforation systems

Inventors: Piro Shkurti (The Woodlands, TX); Christopher Crews (Splendora, TX); Shawn Witt (Kirkland, WA)
Assignee: Longbow Completion Services, LLC
E21B33/1208E21B34/142E21B43/261E21B2200/04
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Quick Facts
Patent No.
US 11,933,132
App. No.
17/501,494
Granted
Mar 19, 2024
Kind
B1
Abstract

A ball-in-place plug configured to isolate formation zones within a wellbore includes an anchoring subassembly configured to secure the ball-in-place plug in the wellbore and a flow control subassembly configured to control the flow of fluid through the plug. The flow control subassembly is configured to allow bidirectional flow of fluid through the ball-in-place plug before the ball-in-place plug is activated, and wherein the flow control subassembly is configured to permit only unidirectional flow of fluid through the ball-in-place plug after the ball-in-place plug is activated.

Claims (42)

1. A plug configured to isolate formation zones within a wellbore, the plug comprising:

a flow control subassembly configured to control the flow of fluid through the plug, the flow control subassembly comprising:

a central chamber;

a ball; and

an offset chamber connected to the central chamber, wherein the offset chamber includes a ball release mechanism that is configured to selectively release the ball from the offset chamber into the central chamber,

wherein the ball release mechanism comprises either a shear screw or a shearing ring and wherein the shear screw or the shearing ring is exposed to a threshold rupture force produced in part by a suction force acting on an interior side of the ball, where the suction force is generated by the movement of fluid through the central chamber; and

an anchoring subassembly configured to secure the plug in the wellbore.

2. The plug of claim 1 , wherein the central chamber comprises:

a ball chamber; and

a downflow seat, wherein the downflow seat and ball are configured to prevent the flow of fluid in a downhole direction through downflow seat when the ball is seated on the downflow seat.

3. The plug of claim 2 , wherein the central chamber further comprises:

a proximal throat;

a distal throat; and

an upflow seat, wherein the upflow seat and ball are configured to prevent the flow of fluid in an uphole direction through the upflow seat when the ball is seated on the upflow seat.

4. The plug of claim 3 , wherein the ball chamber is between the proximal throat and the distal throat.

5. The plug of claim 1 , wherein the offset chamber connects to the central chamber at an angle that is not orthogonal to the central chamber.

6. The plug of claim 1 , wherein the ball is deformable.

7. The plug of claim 1 , further comprising a sealing device between the flow control subassembly and the anchoring subassembly.

8. A plug configured to isolate formation zones within a wellbore, the plug comprising:

a flow control subassembly configured to control the flow of fluid through the plug, the flow control subassembly comprising:

a central chamber;

a ball; and

an offset chamber connected to the central chamber, wherein the offset chamber includes a ball release mechanism that is configured to selectively release the ball from the offset chamber into the central chamber, wherein the ball release mechanism is configured to rupture in response to a force applied to the ball that exceeds a threshold rupture force of the ball release mechanism, and wherein the threshold rupture force is produced in part by a suction force acting on an interior side of the ball, where the suction force is generated by the movement of fluid through the central chamber;

an anchoring subassembly configured to secure the plug in the wellbore; and

a sealing device between the flow control subassembly and the anchoring subassembly.

9. The plug of claim 8 , wherein the anchoring subassembly comprises:

a cone; and

a slip configured to expand outward when forced over the cone.

10. The plug of claim 9 , wherein the sealing device is deployed when the slip expands outward over the cone.

11. The plug of claim 8 , wherein the central chamber comprises:

a proximal throat;

a distal throat; and

a ball chamber between the proximal throat and the distal throat, wherein the ball chamber is configured to permit movement of the ball within the ball chamber.

12. The plug of claim 11 , wherein the central chamber further comprises a downflow seat, wherein the downflow seat and ball are configured to prevent the flow of fluid in a downhole direction through downflow seat when the ball is seated on the downflow seat.

13. The plug of claim 12 , wherein the central chamber further comprises an upflow seat, wherein the upflow seat and ball are configured to prevent the flow of fluid in an uphole direction through the upflow seat when the ball is seated on the upflow seat.

14. The plug of claim 13 , wherein the ball release mechanism is selected from the group consisting of a shearing ring and a shear screw.

15. A ball-in-place plug configured to isolate formation zones within a wellbore, the ball-in-place plug comprising:

an anchoring subassembly configured to secure the ball-in-place plug in the wellbore; and

a flow control subassembly configured to control the flow of fluid through the plug, wherein the flow control subassembly is configured to allow bidirectional flow of fluid through the ball-in-place plug before the ball-in-place plug is activated, and wherein the flow control subassembly is configured to permit only unidirectional flow of fluid through the ball-in-place plug after the ball-in-place plug is activated, wherein the flow control subassembly comprises:

a central chamber;

a ball; and

an offset chamber connected to the central chamber, wherein the offset chamber includes a ball release mechanism that is configured to selectively release the ball from the offset chamber into the central chamber, wherein the ball release mechanism is configured to rupture in response to a force applied to the ball that exceeds a threshold rupture force of the ball release mechanism, and wherein the threshold rupture force is produced in part by a suction force acting on an interior side of the ball, where the suction force is generated by the movement of fluid through the central chamber.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 14, 2024
From: SHKURTI, PIRO; CREWS, CHRISTOPHER; WITT, SHAWN
To: LONGBOW COMPLETION SERVICES, LLC
Reel/Frame 066460/0835 →
Continuity (1)
Provisional Application 63091636 · Oct 14, 2020
Cited By (3)
US 12,264,552 US 12,631,104 US 12,637,933